Technical Field
[0001] The present invention relates to a method for producing a connector terminal for
a multi-stage connector and a method for assembling a multi-stage connector in which
terminals obtained by the method for producing the connector terminal are assembled
to a connector housing.
Background Art
[0002] A multi-stage connector having a plurality of, upper and lower, stages in terminal
arrangements as shown in Fig. 11 is, for example, known as a connector which is directly
mounted on a printed circuit board (see e.g., Patent Document 1). In such a multi-stage
connector, terminal elements 521 and 522 are inserted into and fixed to press-fit
holes 503 formed on a rear wall 502 of a connector housing 501. Lengths of rear leg
sections extending from a rear part of the connector housing 501 are different from
each other between the terminal elements 521 at the upper stage and the terminals
522 at the lower stage, as shown in Fig. 13(a) so that total lengths are different
from each other.
[0003] As a producing method of collectively molding the terminal elements 521 and 522 having
different lengths by a press punching process with a good process yield, a method
is proposed in which two kinds of terminal elements 521 and 522 are alternately arranged
in opposite orientations as shown in Fig. 13(b) so as to be molded, and after the
molding, the cutting points d connecting to respective carriers 511 and 522 are cut
off, thereby obtaining separated terminal elements 521 and 522.
[0004] However, in a case where the number of kinds of lengths of terminal elements is increased,
the yield of the material is degraded so that the cost is increased.
[0005] Therefore, a method of press processing six kinds of terminal elements 621 to 626
(terminal elements for respective stages) having different lengths by using different
dies is sometimes taken as shown in Fig. 12.
Prior Art Documents
Patent Documents
Summary of the Invention
Problems to be Solved by the Invention
[0007] However, in the above case, the cost of dies or the processing cost is unnecessarily
increased so that the producing cost is increased. In addition, in a case where there
is only a material of a band plate having a predetermined width, the yield cost of
the material is deteriorated, similarly.
[0008] The invention is made in view of the above circumstances, and the purpose of the
invention is to provide a method for producing a connector terminal in which all of
the terminals having the lengths of stages which are different from each other are
collectively formed by a single die while minimizing material loss as much as possible,
and to provide a method for assembling a multi-stage connector by using the connector
terminals obtained by the above method.
Means for Solving the Problems
[0009] In order to solve the above problems, there is provided a method for producing a
connector terminal according to a first aspect of the invention by forming a plurality
of terminal elements from a single band-shaped metal plate by press punching wherein
the terminal elements are to be attached to a single connector housing and are 2N
(where, N = 1, 2, 3,...) rod-shaped terminal elements having overall lengths varied
in sequence because lengths of rear leg sections extending from a rear part of the
connector housing are different from each other, are formed by press punching out
of a single band-shaped metal plate. In the producing method, a plurality of rod bodies
bridged between a first carrier and a second carrier which are disposed along both
side edges of the metal plate are arranged on the metal plate in such a manner that
a lengthwise direction of the rod bodies is perpendicular to a longitudinal direction
of the metal plate. A pair of combined terminal elements in series on one rod body
is arranged in such matter that the 2N terminal elements are classified such that
the first N terminal elements in descending order of length are in a first group,
and the remaining N terminal elements are in a second group. The n-th terminal element
(where, n = 1, 2, 3,... ; and n ≤ N) from the shortest one and the n-th terminal element
from the longest one are selected from among the terminal elements of the first and
second groups and are combined one by one. Under the above condition, each of the
terminal elements is formed from the metal plate by press punching.
[0010] A method for producing a connector terminal according to a second aspect of the invention,
is based on the first aspect of the invention. In a case that the n-th terminal element
from the shortest one and the n-th terminal element from the longest one are selected
from among the terminal elements of the first and second groups and are combined one
by one and then the combined two terminal elements are arranged in series on the single
rod body, the combined two terminal elements are arranged on the rod body at the n-th
row arranged on the metal plate, and a set of the terminal elements formed by the
rod bodies in the first to the N-th rows are made to be one unit, and two or more
units of terminals are formed from the one metal plate.
[0011] A method for producing a connector terminal according to a third aspect of the invention,
is based on the second aspect of the invention. The producing method includes a process
of obtaining a plate shaped molded article including the carriers and the rod bodies,
a cutting-off process of cutting off the molded article at a connection position between
the two terminal elements on each rod body under a condition that the carriers are
connected thereto so as to cut off a first terminal row having the terminal elements
in the first group and a second terminal row having the terminal elements in the second
group, and a bending process in which a bending force in a direction perpendicular
to the plate face is applied to the plate shaped molded article cut off in the cutting-off
process so as to form a L-shaped bent section which is adapted to form a rear leg
section on each of the terminal elements constituting the first terminal row and the
second terminal row, thereby forming, on each terminal element, a horizontal straight
section having an electric contact section to be electrically contacted with a counter
terminal at a front end side and a vertical straight section formed by being bent
vertically downward from a rear end of the horizontal straight section. In the bending
process, by performing the bending process while adjusting a position of the bent
section of each terminal element in the vertical direction, heights of the rear leg
sections of the terminal elements having different lengths from the lower end parts
of the vertical straight sections to the bent sections are differentiated in the order
of the lengths of the terminal elements under a condition that the front end positions
of the electric contact sections of all of the terminal elements in the respective
first and second terminal rows are aligned.
[0012] A method for assembling a multi-stage connector having a terminal arrangement of
2N (where N = 1, 2, 3,...) stages in the vertical direction according to a fourth
aspect of the invention, is based on the producing method according to the third aspect
of the invention. The method for assembling a multi-stage connector includes: a process
of obtaining the first terminal row and the second terminal row having the carriers;
a second terminal row assembling process in which horizontal straight sections of
the terminal elements of the second terminal row are inserted into respective press-fit
holes arranged from the lower end to the N-th stages at a rear wall of a connector
housing of the multi-stage connector, and thereby an electric contact section of each
terminal element of the second terminal row is accommodated in a hood of the connector
housing; a second carrier cutting-off process of performing, after the above process,
cutting-off of the second carrier to which the rear leg sections of the terminal elements
are connected; a first terminal row assembling process in which after performing the
second carrier cutting-off process, horizontal straight sections of the terminal elements
of the first terminal row are inserted into respective press-fit holes arranged from
the top to the N-th stages at the rear wall of the connector housing of the multi-stage
connector, and thereby an electric contact section of each terminal element of the
first terminal row is accommodated in the hood of the connector housing; and a first
carrier cutting-off process of performing, after the above process, cutting-off of
the first carrier to which the rear leg sections of the terminal elements are connected.
Advantageous Effects of the Invention
[0013] In accordance with the first aspect of the invention, since two kinds of, i.e., long
and short terminal elements are combined and arranged on each single rod body, the
lengths of the rod bodies arranged on the metal plate can be equalized so that the
connector terminals can be collectively and efficiently produced by press punching
while minimizing material loss. Therefore, it is possible to minimize the cost of
a die or processing as much as possible, and thereby to reduce the producing cost
of the terminals.
[0014] In accordance with the second aspect of the invention, since many kinds of terminal
elements are collectively formed while aligning the arrangement order of the terminal
elements as the order in lengths of the terminal elements, the terminal elements can
be readily assembled to the connector housing under a condition that the terminal
rows are connected to the carrier.
[0015] In accordance with the third aspect of the invention, since the first terminal row
in which the long terminal elements are collected and the second terminal row in which
the short terminal elements are collected, are respectively subjected to the bending
process, it is possible to reduce the number of times of bending processes and kinds
of dies for processing, thereby reducing the processing cost.
[0016] In accordance with the fourth aspect of the invention, the terminal elements in the
multi-stages at the lower side and the terminal elements in the multi-stages at the
upper side can be collectively inserted into and assembled to the press-fit holes
of the connector housing with respect to the lower and upper side stages while the
terminal elements are connected to the carriers. Therefore, the number of times of
the press fitting can be reduced, thereby reducing troubles in the assembling.
Brief Description of the Drawings
[0017]
[Fig. 1] Fig. 1 is a perspective view showing a partial structure of a molded article
obtained by a press processing according to an embodiment of the invention.
[Fig. 2] Fig. 2 is an enlarged perspective view showing a main part of the molded
article shown in Fig. 1.
[Fig. 3] Fig. 3 is a plan view showing the molded article.
[Fig. 4] Fig. 4 is a plan view showing a state that the molded article is cut and
separated into a first terminal row and a second terminal row.
[Fig. 5] Fig. 5 is a schematic view showing a state that rear leg sections of terminal
elements of the first terminal row and rear leg sections of terminal elements of the
second terminal row are subjected to a bending process, Fig. 5(a) is a perspective
view showing a state that the terminal elements of the second terminal row shown in
Fig. 4 are subjected to the bending process, and
Fig. 5(b) is a perspective view showing a state that the terminal elements of the
first terminal row shown in Fig. 4 are subjected to the bending process.
[Fig. 6] Fig. 6 is an elevational side view showing the terminal elements of the first
terminal row and the terminal elements of the second terminal row, and Fig. 6(a) and
Fig. 6(b) are elevational side views respectively showing the terminal rows shown
in Fig. 5(a) and Fig. 5(b).
[Fig. 7] Fig. 7 is a perspective view showing a state that the terminal elements of
the second terminal row shown in Fig. 5(a) are going to be press-fitted into a connector
housing.
[Fig. 8] Fig. 8 is a perspective view showing a state that after the terminal elements
of the second terminal row are press-fitted thereinto, a second carrier is cut off,
and then the terminal elements of the first terminal row shown in Fig. 5(b) are going
to be press-fitted into the connector housing.
[Fig. 9] Fig. 9 is a perspective view showing a state that the pres-fitting of the
terminal elements of the first terminal row into the connector housing is completed.
[Fig. 10] Fig. 10 is a perspective view showing a state that a first carrier is cut
off after the press-fitting.
[Fig. 11] Fig. 11 is a cross sectional view showing an example of a related art multi-stage
connector.
[Fig. 12] Fig. 12 is a perspective view showing structures of the terminal elements
to be used in a six-stage type multi-stage connector.
[Fig. 13] Fig. 13 is a schematic view showing structures of terminal elements to be
used in the related art multi-stage connector shown in Fig. 11, Fig. 13(a) is a plan
view showing the structures of the terminal elements to be used in the related art
multi-stage connector shown in Fig. 11, and Fig. 13(b) is a plan view showing a molded
article having terminal elements which are collectively formed by press molding.
Mode for Carrying Out the Invention
[0018] An embodiment of the invention is described below with reference to accompanying
drawings.
[0019] Fig. 1 is a perspective view showing a partial structure of a molded article obtained
by a press processing by a method according to the embodiment. Fig. 2 is an enlarged
perspective view showing a main part of the molded article. Fig. 3 is a plan view
showing the molded article.
[0020] A producing method of the embodiment is configured such that six rod-shaped terminal
elements 21 to 26 which are to be attached to a single connector housing 100 and respectively
have rear leg sections 33 extending from a rear side of the connector housing 100
and having different lengths, and thereby have total lengths varied in sequence, are
formed from a single band-shaped metal plate W by press punching. In the producing
method of the embodiment, a first carrier 11 and a second carrier 12 are first arranged
on the metal plate W along both side edges of the metal plate W. In addition, a plurality
of rod bodies A1 to A3 bridged between the first carrier 11 and the second carrier
12 are arranged on the metal plate W in such a manner that the lengthwise direction
of the rod bodies A1 to A3 is perpendicular to the longitudinal direction X of the
metal plate W.
[0021] On the other hand, the six terminal elements 21 to 26 having different total lengths
to be used for a multi-stage connector having six stages are classified such that
three terminal elements in descending order of length from the longest one are in
a first group and the remaining three terminal elements are in a second group. The
n-th terminal element 24, 25 or 26 from the shortest one and the n-th terminal element
21, 22 or 23 from the longest one are selected from among the terminal elements 21
to 26 in the respective groups(where n = 1, 2, 3,... ; and n ≤ N) and are combined
one by one. The combined two terminal elements 21 and 26, 22 and 25, and 23 and 24
are arranged in series on the rod bodies A1 to A3 respectively.
[0022] Each of the terminal elements 21 to 26 has, as a common structure, an electric contact
section 31 which is disposed at a front end and is to be contacted with a counter
terminal, a press-fit engagement section 32 which is disposed at the rear side thereof
and is to be engaged with a press-fit hole of the connector housing 100, and a rear
leg section 33 which protrudes to the outside from a rear side of the connector housing
100 when it is set in the connector housing 100. Each of the terminal elements 21
to 26 has a substrate connection section 34 disposed at a base end (also referred
to as a rear end) of the rear leg section 33. The set of the terminal element 21,
22 or 23 in the first group and the terminal element 24, 25 or 26 in the second group
are arranged on each of the rod bodies A1 to A3 so as to be in orientations opposite
to each other. The front ends of the electric contact sections 31 are coupled with
each other at each of connection positions a to c to be cut off, and the rear ends
of the substrate connection sections 34 are respectively coupled to the first carrier
11 and the second carrier 12 with connection positions d to be cut off therebetween.
[0023] In the above case, each two of the terminal elements 21 to 26 are arranged on the
rod body at the n-th row in the rod bodies A1 to A3 arranged on the metal plate W.
While a set of terminal elements 21 to 26 formed by the rod bodies A1 to A3 from the
first row to the third row are made as one unit, two or more units of terminal elements
21 to 26 are formed from the single metal plate W.
[0024] To be specific, the first longest terminal element 21 and the first shortest terminal
element 26 are combined and are arranged in series on the one rod body A1 disposed
at the first row. In addition, the second longest terminal element 22 and the second
shortest terminal element 25 are combined and are arranged in series on the one rod
body A2 disposed at the second row. Further, the third longest terminal element 23
and the third shortest terminal element 24 are combined and are arranged in series
on the one rod body A3 disposed at the second row. By making the set of the terminal
elements 21 to 26 formed by the rod bodies A1 to A3 from the first row to the third
row as one unit A, two or more units of terminal elements 21 to 26 are formed from
the single metal plate W.
[0025] In accordance with the producing method, since the two kinds of, i.e., long and short
terminal elements 21 and 26, 22 and 25, or 23 and 24 are combined and arranged on
each one of the rod bodies, the lengths of the rod bodies A1 to A3 arranged on the
metal plate W can be equalized. Consequently, it is possible to collectively and efficiently
produce the connector terminals 21 to 26 while minimizing the material loss as much
as possible. Therefore, it is possible to suppress the cost of the die or processing
to its minimum, and thereby to reduce the production cost of the terminal elements.
In addition, since various kinds of terminal elements 21 to 26 are collectively molded
while aligning the arrangement order of the terminal elements 21 to 26 as the order
in lengths of the terminal elements 21 to 26, the terminal elements 21 to 26 can be
readily assembled to the connector housing 100 of the multi-stage connector under
a condition that terminal rows F1 and F2 are connected to the carriers 11 and 12.
[0026] Next, a sequence of forming the multi-stage connector from the molded article 10
molded as shown in Fig. 3 by assembling the terminal elements 21 to 26 to the connector
housing 100, is described below.
[0027] First, the plate shaped molded article 10 including the carriers 11 and 12 and the
rod bodies A1 to A3 as shown in Fig. 3. is formed. Next, the molded article 10 is
cut at the connection positions a to c (see Fig. 3) of each two of the terminal elements
21 to 26 arranged on the respective rod bodies A1 to A3 as shown in Fig. 4 under a
condition that the carriers 11 and 12 are connected to the molded article 10, and
thereby the molded article 10 is cut and separated into the first terminal row F1
constituted by the set of terminal elements 21 to 23 in the first group and the second
terminal row F2 constituted by the set of terminal elements 24 to 26 in the second
group.
[0028] Next, a bending force in a direction perpendicular to the plate face is applied to
the cut off plate shaped molded article (the first terminal row F1 and the second
terminal row F2), and thereby L-shaped first bent sections e1 constituting the rear
leg sections 33 are formed on the respective terminal elements 21 to 26 constituting
the first terminal row F1 and the second terminal row F2 as shown in Figs. 5(a) and
5(b) and Figs. 6(a) and 6(b). With this, a horizontal straight section 35 having an
electric contact section 31 to be electrically contacted with a counter terminal disposed
at a front end side and a vertical straight section 36 which is bent vertically downward
from a rear end of the horizontal straight section 35 can be formed on each of the
terminal elements 21 to 26. By adding a second bent section e2 at the same time of
the bending process, a substrate connection section 34 in parallel to the horizontal
straight section 35 is formed.
[0029] Meanwhile, in the bending process, by performing the bending process while adjusting
a position of the first bent section e1 of each of the terminal elements 21 to 26
in the vertical direction, heights of the rear leg sections 33 of the terminal elements
21 to 26, having different lengths, from the lower end parts (second portions e2)
of the vertical straight sections 36 to the first bent sections e1 are differentiated
in the order of the lengths of the terminal elements 21 to 26 under a condition that
the front end positions of the electric contact sections 31 of all the terminal elements
21 to 26 in the respective first and second terminal rows F1 and F2 are aligned.
[0030] Thus, since the first terminal row F1 having the set of long terminal elements 21
to 23 and the second terminal row F2 having the set of short terminal elements 24
to 26 are respectively subjected to the bending process so as to cause the terminal
elements 21 to 26 to be collectively bent with respect to the first and second terminal
rows F1 and F2, it is possible to reduce the number of times of bending processes
and kinds of dies for processing, and thereby to reduce the processing cost.
[0031] Next, as shown in Fig. 7, the horizontal straight sections 35 of the terminal elements
24 to 26 of the second terminal row F2 with the carrier 12 produced as in the above
are press-fitted into press-fit holes 124 to 126 arranged from the lower end to the
third stages at a rear wall 120 of the connector housing 100 of the multi-stage connector
having six stages, and thereby the electric contact sections 31 of the terminal elements
24 to 26 of the second terminal row F2 are accommodated in a hood of the connector
housing 100 (a second terminal row assembling process). After that, the second carrier
12 connected to the rear leg sections 33 of the terminal elements 24 to 26 is cut
off at the connection positions d to be separated therefrom (a second carrier cutting-off
process).
[0032] Next, as shown in Figs. 8 and 9, the horizontal straight sections 35 of the terminal
elements 21 to 23 of the first terminal row F1 are press-fitted into press-fit holes
121 to 123 arranged from the top to the third stages at the rear wall 120 of the connector
housing 100, and thereby the electric contact sections 31 of the terminal elements
21 to 23 are accommodated in the hood of the connector housing 100 (a first terminal
assembling process). After that, the first carrier 11 connected to the rear leg sections
33 of the terminal elements 21 to 23 is cut off at the connection positions d to be
separated therefrom (a first carrier cutting-off process), thereby the multi-stage
connector having six stages can be completed as shown in Fig. 10.
[0033] Thus, the terminal elements 24 to26 in three stages at the lower side and the terminal
elements 21 to 23 in three stages at the upper side can be collectively inserted into
the press-fit holes 121 to 126 of the connector housing 100 so as to be assembled
to the connector housing 100 while the carriers 11 and 12 are connected to the terminal
elements 21 to 26. Therefore, the number of times of press-fitting can be reduced
and trouble in the assembling can be suppressed.
[0034] While a case in which the six kinds of terminal elements 21 to 26 having different
lengths to be used in the multi-stage connector having six stages are produced and
assembled to the connector housing 100, is described in the above embodiment, the
number of stages is not limited thereto.
[0035] For example, in a case where a multi-stage connector having terminal arrangement
of arbitrary 2N (where, N = 1, 2, 3, ...) in the vertical direction is formed, 2N
terminal elements to be used therein is classified such that N terminals from the
longest one are in a first group and the remaining N terminals are in a second group.
The n-th terminal element (where, n = 1, 2, 3,..., and n <= N) from the shortest one
and the n-th terminal element from the longest one are selected from the terminal
elements in the respective groups and are combined one by one. The combined two terminal
elements are arranged in series on each of the rod bodies. At that time, the two terminal
elements are arranged on the rod body at the n-th row arranged on the metal plate,
and by making the set of the terminal elements formed by the rod bodies from the first
to the third rows as one unit, two or more units of terminal elements are molded from
the single metal plate.
[0036] In addition, the terminal elements formed as in the above are collectively subjected
to the bending process, and thereby assembled to the connector housing of the multi-stage
connector having 2N stages (where, N = 1, 2, 3, ...). At that time, first, the horizontal
straight sections of the terminal elements (shorter ones) of the second terminal row
are inserted into the press-fit holes arranged from the lower end to the N-th stages
of the connector housing, and then the second carrier is cut off. Next, the horizontal
straight sections of the terminal elements (longer ones) of the first terminal row
are inserted into the press-fit holes arranged from the top to the N-th stages of
the connector housing, and then the first carrier is cut off. By the above processes,
the multi-stage connector having arbitrary 2N stages can be achieved.
[0037] While the invention is described in detail by referring to a specific embodiment,
it is understood by those of ordinary skill in the art that various modifications
and changes can be made without departing from the sprit and scope of the invention.
Description of Reference Numerals and Signs
[0039]
- 10
- molded article
- 11
- first carrier
- 12
- second carrier
- 21 to 26
- terminal element
- 31
- electric contact section
- 33
- rear leg section
- 35
- horizontal straight section
- 36
- vertical straight section
- 100
- connector housing
- 120
- rear wall
- 121-126
- press-fit hole
- F1
- first terminal row
- F2
- second terminal row
- e1
- first bent section
- W
- metal plate
- A
- unit
- A1-A3
- rod body
- X
- longitudinal direction of metal plate
1. A method for producing a connector terminal by forming a plurality of terminal elements
from a single band-shaped metal plate by press punching, wherein the terminal elements
are to be attached to a single connector housing and are 2N (where, N = 1, 2, 3,...)
rod-shaped terminal elements having overall lengths varied in sequence due to lengths
of rear leg sections extending from a rear part of the connector housing being different
from each other, the method comprising the steps of:
arranging a plurality of rod bodies bridged between a first carrier and a second carrier
which are disposed along both side edges of the metal plate on the metal plate such
that a lengthwise direction of the rod bodies is perpendicular to a longitudinal direction
of the metal plate;
arranging a pair of combined terminal elements in series on one rod body in such matter
that the 2N terminal elements are classified such that the first N terminal elements
in descending order of length are in a first group and the remaining N terminal elements
are in a second group, the n-th terminal element (where, n = 1, 2, 3,... ; and n ≤
N) from the shortest one and the n-th terminal element from the longest one are selected
from among the terminal elements of the first and second groups and are combined one
by one; and
forming each of the terminal elements from the metal plate by press punching under
the arranged condition.
2. The method for producing the connector terminal according to claim 1, wherein in a
case that the n-th terminal element from the shortest one and the n-th terminal element
from the longest one are selected from among the terminal elements of the first and
second groups and are combined one by one and then the combined two terminal elements
are arranged in series on the single rod body, the combined two terminal elements
are arranged on the rod body at the n-th row arranged on the metal plate; and
wherein a set of the terminal elements formed by the rod bodies in the first to the
N-th rows are made to be one unit, and two or more units of terminals are formed from
the one metal plate.
3. A method for producing a connector terminal, comprising the steps of:
obtaining a plate shaped molded article including the carriers and the rod bodies
by the process according to claim 2,
cutting off the molded article at a connection position between the two terminal elements
on each rod body under a condition that the carriers are connected thereto so as to
cut off a first terminal row having the terminal elements in the first group and a
second terminal row having the terminal elements in the second group; and
applying a bending force in a direction perpendicular in a bending process to the
plate face to the plate shaped molded article which is cut off in the cutting-off
process so as to form a L-shaped bent section adapted to form a rear leg section on
each of the terminal elements constituting the first terminal row and the second terminal
row, thereby forming, on each terminal element, a horizontal straight section having
an electric contact section to be electrically contacted with a counter terminal at
a front end side thereof and a vertical straight section formed by being bent vertically
downward from a rear end of the horizontal straight section,
wherein in the bending process, by performing the bending while adjusting a position
of the bent section of each terminal element in the vertical direction, heights of
the rear leg sections of the terminal elements having different lengths from the lower
end parts of the vertical straight sections to the bent sections are different in
the order of the lengths of the terminal elements under a condition that the front
end positions of the electric contact sections of all of the terminal elements in
the respective first and second terminal rows are aligned.
4. A method for assembling a multi-stage connector having a terminal arrangement of 2N
(where N = 1, 2, 3,...) stages in a vertical direction, the method comprising the
steps of:
obtaining the first terminal row and the second terminal row having the carriers by
the process according to claim 3;
inserting horizontal straight sections of the terminal elements of the second terminal
row into respective press-fit holes arranged from the lower end to the N-th stages
at a rear wall of a connector housing of the multi-stage connector in a second terminal
row assembling process, and thereby an electric contact section of each terminal element
of the second terminal row is accommodated in a hood of the connector housing;
after performing the second terminal row assembling process, cutting-off the second
carrier to which the rear leg sections of the terminal elements are connected in a
second carrier cutting-off process;
after performing the second carrier cutting-off process, inserting horizontal straight
sections of the terminal elements of the first terminal row into respective press-fit
holes arranged from the top to the N-th stages at the rear wall of the connector housing
of the multi-stage connector in a first terminal row assembling process, and thereby
an electric contact section of each terminal element of the first terminal row is
accommodated in the hood of the connector housing; and
after performing the first terminal row assembling process, cutting-off the first
carrier to which the rear leg sections of the terminal elements are connected in a
first carrier cutting-off process.